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Analysis for discharge-radiation dynamics in alternating current plasma display panels

机译:交流等离子显示面板中的放电辐射动力学分析

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摘要

An analytical method to study the discharge-radiation dynamics (DRD) in alternating current plasma display panels was developed. The input parameters for this DRD analysis were experimentally determined panel voltage and current wave forms. Discharge voltage, current, and power wave forms in the discharge volume of a cell were first obtained from the measured panel voltage and current wave forms using known geometrical configurations and electric circuit calculations. Intrinsic discharge parameters, such as electron temperature and density, were then determined to satisfy these discharge wave forms under the assumption of a hydrodynamic approach. A one-dimensional discharge structure with two regions (cathode fall and positive column) and several other assumptions which are plausible from the discharge physics point of view were also adopted. These assumptions took account of known cross sections and energies of electron-impact excitation and ionization of discharge gas atoms, and a secondary electron emission coefficient of the dielectric surface at the cathode side induced by ion bombardment. Radiation intensities from the discharge were calculated using the determined intrinsic discharge parameters, and the results were compared with those measured for the respective panel conditions used in the calculations, yielding a fair agreement. The luminous efficiency, defined as the radiation intensity divided by the discharge power, was also determined using the intrinsic discharge parameters. Discussion on the luminous efficiency change for different panel operating conditions revealed that the efficiency improvement at a lower voltage was attributable to a lower electron temperature for this condition.
机译:开发了一种分析方法来研究交流等离子体显示板中的放电辐射动力学(DRD)。用于DRD分析的输入参数是实验确定的面板电压和电流波形。首先使用已知的几何构型和电路计算从测量的面板电压和电流波形中获得电池放电体积中的放电电压,电流和功率波形。然后在流体动力学方法的假设下确定本征放电参数,例如电子温度和密度,以满足这些放电波形。从放电物理的角度看,也采用了具有两个区域(阴极下降和正极)的一维放电结构,以及其他一些合理的假设。这些假设考虑了已知的横截面和已知的电子碰撞激发和放电气体原子的电离能,以及由离子轰击引起的阴极侧电介质表面的二次电子发射系数。使用确定的固有放电参数计算出放电的辐射强度,并将结果与​​在计算中使用的各个面板条件下测量的结果进行比较,得出了一个合理的结论。还使用固有放电参数确定发光效率,定义为辐射强度除以放电功率。对不同面板工作条件下的发光效率变化的讨论表明,在此条件下,较低电压下的效率提高可归因于较低的电子温度。

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